Centrifuge shaking table tests on overflow-based pressure control system for seismic response and uplift control of underground structures

Under strong seismic excitation, excess pore water pressure (EPWP) within liquefiable soil layers rises rapidly, reducing soil effective stress and increasing buoyant uplift forces on underground structures, which may lead to structural damage. Engineering disaster records over recent decades concerning underground structure uplift induced by soil liquefaction indicate that conventional hydrostatic-based anti-uplift design approaches may become inadequate under seismic liquefaction conditions. This paper proposes an overflow-based pressure control (OPC) system. By installing automatic overflow valves on the base slab of underground structures, the accumulated EPWP beneath the slab during earthquakes are controllably released along a preset path, so as to alleviate seismic response to underground structures. Two comparative centrifuge shaking table tests (with and without OPC system) are conducted. Test results indicate that the OPC system significantly reduces the EPWP beneath the base slab of the underground structure, attenuates its seismic acceleration responses, and mitigates structural uplift. The findings of this study provide a novel technical framework and reliable experimental evidence for methods to reduce seismic responses and achieve uplift control of underground structures constructed on liquefiable sites subjected to seismic loading.

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Publication Details

Journal
Soil Dynamics and Earthquake Engineering
Published
2026-10-05
DOI
https://doi.org/10.1016/j.soildyn.2026.110736
Primary Topic
Geotechnical Engineering and Underground Structures
Type
article
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article

Centrifuge shaking table tests on overflow-based pressure control system for seismic response and uplift control of underground structures

Tianyi Zhu, Junguang Huang, Rui Wang, Zhang Jianmin et al.
Soil Dynamics and Earthquake Engineering
Geotechnical Engineering and Underground Structures
article

Centrifuge shaking table tests on overflow-based pressure control system for seismic response and uplift control of underground structures

Tianyi Zhu, Junguang Huang, Rui Wang, Zhang Jianmin, Wei Yu
article en

Abstract

Under strong seismic excitation, excess pore water pressure (EPWP) within liquefiable soil layers rises rapidly, reducing soil effective stress and increasing buoyant uplift forces on underground structures, which may lead to structural damage. Engineering disaster records over recent decades concerning underground structure uplift induced by soil liquefaction indicate that conventional hydrostatic-based anti-uplift design approaches may become inadequate under seismic liquefaction conditions. This paper proposes an overflow-based pressure control (OPC) system. By installing automatic overflow valves on the base slab of underground structures, the accumulated EPWP beneath the slab during earthquakes are controllably released along a preset path, so as to alleviate seismic response to underground structures. Two comparative centrifuge shaking table tests (with and without OPC system) are conducted. Test results indicate that the OPC system significantly reduces the EPWP beneath the base slab of the underground structure, attenuates its seismic acceleration responses, and mitigates structural uplift. The findings of this study provide a novel technical framework and reliable experimental evidence for methods to reduce seismic responses and achieve uplift control of underground structures constructed on liquefiable sites subjected to seismic loading.

Soil Dynamics and Earthquake EngineeringVol. 212
Guangzhou Design Institute (CN), Guangzhou Institute of Mechanical Design (CN), Guangzhou Municipal Engineering Design and Research Institute (CN), Tsinghua University (CN)
Openalex Percentile: Top 17%
Geotechnical Engineering and Underground Structures
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Centrifuge shaking table tests on overflow-based pressure control system for seismic response and uplift control of underground structures — Tianyi Zhu, Junguang Huang, et al. · Soil Dynamics and Earthquake Engineering (2026) | TGRS Research Map | TGRS